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Fast localization method of an anomaly in tissue based on differential optical density

机译:基于差分光密度的组织异常快速定位方法

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摘要

The position of the source-detector (S-D) relative to an anomaly has an important influence on the detection effect in non-invasive near-infrared spectroscopy-based methods. In this study, a single-source multi-detector structure was designed in order to realize the rapid localization of anomalies within tissue. This method uses finite element analysis of the optical density distribution for different horizontal positions, depths and diameters of anomalies. The difference in optical density between the detectors was then calculated. The simulation results show that the horizontal position of the anomaly in the tissue can be quickly located according to the differential optical density difference curves formed by the multiple detectors. The Gaussian fitting feature of these curves shows strong correlation with the horizontal positions, depths and diameters of the anomaly. Through the differential optical density difference curves, rapid localization within the region of interest can be achieved. This method provides an important reference for sources and detectors location for tumor detection, brain function optical imaging and other fields using near infrared spectroscopy, and improves its detection accuracy.
机译:源探测器(S-D)相对于异常的位置对基于无创近红外光谱法的探测效果具有重要影响。在这项研究中,设计了一种单源多探测器结构,以实现组织内异常的快速定位。该方法对不同水平位置,异常深度和直径的光密度分布进行了有限元分析。然后计算检测器之间的光密度差。仿真结果表明,根据多个检测器形成的差分光密度差曲线,可以快速定位组织中异常的水平位置。这些曲线的高斯拟合特征显示出与异常的水平位置,深度和直径有很强的相关性。通过微分的光密度差曲线,可以实现目标区域内的快速定位。该方法为肿瘤检测,脑功能光学成像及其他近红外光谱领域的来源和检测器位置提供了重要参考,并提高了其检测精度。

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